US11177768B2 - Integrated photovoltaic panel circuitry - Google Patents
Integrated photovoltaic panel circuitry Download PDFInfo
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- US11177768B2 US11177768B2 US16/113,593 US201816113593A US11177768B2 US 11177768 B2 US11177768 B2 US 11177768B2 US 201816113593 A US201816113593 A US 201816113593A US 11177768 B2 US11177768 B2 US 11177768B2
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01L—SEMICONDUCTOR DEVICES NOT COVERED BY CLASS H10
- H01L31/00—Semiconductor devices sensitive to infrared radiation, light, electromagnetic radiation of shorter wavelength or corpuscular radiation and specially adapted either for the conversion of the energy of such radiation into electrical energy or for the control of electrical energy by such radiation; Processes or apparatus specially adapted for the manufacture or treatment thereof or of parts thereof; Details thereof
- H01L31/02—Details
- H01L31/02016—Circuit arrangements of general character for the devices
- H01L31/02019—Circuit arrangements of general character for the devices for devices characterised by at least one potential jump barrier or surface barrier
- H01L31/02021—Circuit arrangements of general character for the devices for devices characterised by at least one potential jump barrier or surface barrier for solar cells
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02S—GENERATION OF ELECTRIC POWER BY CONVERSION OF INFRARED RADIATION, VISIBLE LIGHT OR ULTRAVIOLET LIGHT, e.g. USING PHOTOVOLTAIC [PV] MODULES
- H02S40/00—Components or accessories in combination with PV modules, not provided for in groups H02S10/00 - H02S30/00
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01L—SEMICONDUCTOR DEVICES NOT COVERED BY CLASS H10
- H01L31/00—Semiconductor devices sensitive to infrared radiation, light, electromagnetic radiation of shorter wavelength or corpuscular radiation and specially adapted either for the conversion of the energy of such radiation into electrical energy or for the control of electrical energy by such radiation; Processes or apparatus specially adapted for the manufacture or treatment thereof or of parts thereof; Details thereof
- H01L31/04—Semiconductor devices sensitive to infrared radiation, light, electromagnetic radiation of shorter wavelength or corpuscular radiation and specially adapted either for the conversion of the energy of such radiation into electrical energy or for the control of electrical energy by such radiation; Processes or apparatus specially adapted for the manufacture or treatment thereof or of parts thereof; Details thereof adapted as photovoltaic [PV] conversion devices
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02S—GENERATION OF ELECTRIC POWER BY CONVERSION OF INFRARED RADIATION, VISIBLE LIGHT OR ULTRAVIOLET LIGHT, e.g. USING PHOTOVOLTAIC [PV] MODULES
- H02S40/00—Components or accessories in combination with PV modules, not provided for in groups H02S10/00 - H02S30/00
- H02S40/30—Electrical components
- H02S40/34—Electrical components comprising specially adapted electrical connection means to be structurally associated with the PV module, e.g. junction boxes
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02S—GENERATION OF ELECTRIC POWER BY CONVERSION OF INFRARED RADIATION, VISIBLE LIGHT OR ULTRAVIOLET LIGHT, e.g. USING PHOTOVOLTAIC [PV] MODULES
- H02S40/00—Components or accessories in combination with PV modules, not provided for in groups H02S10/00 - H02S30/00
- H02S40/30—Electrical components
- H02S40/36—Electrical components characterised by special electrical interconnection means between two or more PV modules, e.g. electrical module-to-module connection
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02J—CIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
- H02J1/00—Circuit arrangements for dc mains or dc distribution networks
- H02J1/10—Parallel operation of dc sources
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02E—REDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
- Y02E10/00—Energy generation through renewable energy sources
- Y02E10/50—Photovoltaic [PV] energy
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02E—REDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
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- Y02E10/56—Power conversion systems, e.g. maximum power point trackers
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
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Definitions
- a photovoltaic panel or a solar panel is an interconnected assembly of solar cells and is the basic component of a photovoltaic system.
- Manufacturers of photovoltaic panels specify electrical characteristics which may include maximum rated power, open circuit voltage, short circuit current, maximum power voltage, maximum power current, temperature coefficients and insulation resistance.
- Insulation resistance testing may be carried out by shorting a positive terminal and a negative terminal of a solar panel, and then by applying a predetermined voltage between the live electrical section and the outer housing, backside, the frame, and ground terminals.
- Wet insulation testing of photovoltaic panels may include performing resistance measurement on the insulation of a photovoltaic panel immersed in a liquid solution bath. The insulation resistance test and wet insulation test verifies that the solar panel or the solar cell array has insulation high enough to reduce the possibility of fire and electrocution hazards.
- circuits which are integrated or integrable with a photovoltaic panel to provide built-in functionality to the photovoltaic panel.
- a photovoltaic module which may include a photovoltaic panel and an isolated converter circuit with a primary input connected to the photovoltaic panel and a secondary output galvanically isolated from the primary input.
- the primary input may be connectible to multiple input terminals within a junction box and at least one of the input terminals may be electrically connected to a ground.
- the photovoltaic module may include multiple interconnected photovoltaic cells connected electrically to multiple connectors (for example bus-bars).
- the photovoltaic module may include input terminals operable for connecting to the connectors and an isolated converter circuit.
- the isolated converter circuit may include a primary input connected to the input terminals and a secondary output galvanically isolated from the primary input.
- the isolated converter circuit may convert DC power on the primary input to a DC power on the secondary output.
- a duty cycle of the isolated converter circuit may be adjustable to give a nominal voltage on the secondary output.
- the duty cycle of the isolated converter circuit may be adjustable to give an adjustable open circuit voltage across the secondary output.
- the isolated converter circuit may be a Cuk circuit, a buck circuit, a buck-boost circuit, a buck and boost circuit, a boost circuit, a full-bridge circuit, a half-bridge circuit, a push-pull circuit, a resonant forward circuit, a forward circuit, a half-forward circuit, a ringing choke converter or a flyback circuit.
- the photovoltaic module may be galvanically isolated from the primary input.
- the secondary output may be a dual direct-current (DC) output or a single direct-current (DC) output.
- the primary input may be a dual direct-current (DC) input from the connectors (for example bus-bars) or a single direct-current (DC) input from the connectors.
- Both the primary input and the secondary output may be dual direct-current (DC) input and output respectively or may be a single direct-current (DC) input and output respectively.
- the primary input and the secondary output may be a single direct-current (DC) input and a dual direct-current (DC) output respectively or may be a dual direct-current (DC) input and a single direct-current (DC) output respectively.
- a power harvesting system which includes multiple photovoltaic cells, and/or panels. Multiple isolated converter circuit modules with respective primary inputs, which may be integrable with and electrically connectable to respective photovoltaic panels.
- the power harvesting system may further include multiple interconnected photovoltaic strings. Each photovoltaic string may be a series connection of secondary outputs of the isolated converter circuit modules and the secondary outputs may be galvanically isolated from the primary inputs.
- a duty cycle of the isolated converter circuit modules may be adjustable to give an adjustable nominal voltage across the interconnected photovoltaic strings.
- a load may also be connected across the photovoltaic strings. The load may be a DC to alternating current (AC) inverter, a three-level DC to AC inverter, a grid tied DC to AC inverter, a DC battery, a DC motor or a DC to DC converter input.
- AC alternating current
- a method to reduce the voltage rating of a serial connection of photovoltaic panels in a solar power harvesting system connects multiple primary input terminals of respective power converters to the connectors (for example bus-bars) of respective photovoltaic panels. Multiple secondary output terminals of the power converters are connected together to provide the serial connection. The secondary output terminals are galvanically isolated from the primary input terminals.
- a method for providing an adjustable open circuit voltage at the output terminals of a photovoltaic module connects primary input terminals of a power converter to the connectors (for example bus-bars) of the photovoltaic panel. Power on the primary input terminals may be converted to an output power on secondary output terminals of the power converter. A duty cycle of the power converter may be adjusted to set and adjust an open circuit voltage across the secondary output terminals.
- FIG. 1 illustrates a photovoltaic solar power harvesting system, illustrating features of various embodiments.
- FIG. 2 a shows a cross section of a photovoltaic panel.
- FIG. 2 b which shows a plan view the photovoltaic panel shown in FIG. 2 a.
- FIG. 3 a shows details of a circuit and a photovoltaic panel shown in FIG. 1 , according to an illustrative embodiment.
- FIGS. 3 b and 3 c show two illustrative circuits for a DC/DC converter shown in FIG. 3 a which are operable by a controller.
- FIG. 3 d shows an isolating DC to alternating current (AC) inverter, according to an illustrative embodiment.
- FIG. 3 e which shows a photovoltaic module, according to an illustrative embodiment.
- FIG. 4 shows an alternative photovoltaic solar power harvesting system, according to various aspects.
- FIG. 5 which shows a method which may be applied to the system and junction boxes shown in FIG. 1 , according to an illustrative feature.
- FIG. 6 shows a method according to various embodiments.
- various embodiments may, by non-limiting example, alternatively be configured using other distributed power systems including (but not limited to) wind turbines, hydro turbines, fuel cells, storage systems such as battery, super-conducting flywheel, and capacitors, and mechanical devices including conventional and variable speed diesel engines, Stirling engines, gas turbines, and micro-turbines.
- circuitry integrated or integrable with a photovoltaic panel to form a photovoltaic module.
- the circuitry allows for galvanic isolation between the photovoltaic panel and the output of the circuitry.
- the circuit is connected or connectible at the input terminals to a photovoltaic panel.
- the output terminals may be connected to form a string of photovoltaic modules.
- Multiple photovoltaic modules may be parallel connected to form the photovoltaic solar power harvesting system
- switch may refer in various embodiments to an active semiconductor switch, e.g. a field effect transistor (FET), in which a controllable and/or variable voltage or current is applied to a control terminal, e.g. gate, of the switch which determines the amount current flowing between the poles of the switch, e.g. source and drain of the FET.
- FET field effect transistor
- activate may refer to opening, closing and/or toggling i.e. alternatively opening and closing the switch.
- galvanic isolation is a way of isolating functional sections of electrical circuits and/or systems from the movement of charge-carrying particles from one section of an electrical circuit and/or a system to another. That is, there is no direct current between the functional sections of electrical circuits and/or systems. Energy or information, however, can still be exchanged between the sections of electrical circuits and/or systems by other means, e.g. capacitance, mutual inductance or electromagnetic waves, or by optical, acoustic or mechanical means.
- DC input or output may refer in various embodiments to positive and negative terminals referenced to each other and referenced to a third terminal, such as ground potential, electrical ground or a neutral of an alternating current (AC) supply which may be connected to electrical ground at some point.
- AC alternating current
- single DC input or output refers to positive and negative terminals referenced to each other, but not referenced or connected to a ground potential, electrical ground or a neutral of an alternating current (AC) supply, unless one of the terminals is coupled to a reference.
- two-level inverter refers to and inverter having an AC phase output having two voltage levels with respect to a negative terminal.
- the negative terminal is common to the AC phase output and the direct current (DC) input of the two-level inverter.
- the alternating current (AC) phase output of the two-level inverter may be a single phase output a two phase output or a three phase output. Therefore, the single phase output has two voltage levels with respect to the negative terminal.
- the two phase output has two voltage levels with respect to the negative terminal for each of two phases.
- the three phase output has two voltage levels with respect to the negative terminal for each of three phases.
- the term “three-level inverter” as used herein refers to and inverter having an alternating current (AC) phase output having three voltage levels.
- the AC phase output has three voltage levels with respect to a negative terminal.
- the negative terminal may be common to the AC phase output and the direct current (DC) input of the three-level inverter.
- the alternating current (AC) phase output of the three-level inverter may be a single phase output, a two phase output, or a three phase output. Therefore, the single phase output has three voltage levels with respect to the negative terminal.
- the two phase output has three voltage levels with respect to the negative terminal for each of the two phases.
- the three phase output has three voltage levels with respect to the negative terminal for each of the three phases.
- the three-level inverter compared with the two-level inverter may have a cleaner AC output waveform, may use smaller size magnetic components and may have lower losses in power switches, since more efficient lower voltage devices may be used.
- Three-level inverter circuits may have dual (positive and negative) direct current (DC) inputs.
- Power harvesting system 10 includes multiple photovoltaic panels 101 connected respectively to multiple junction boxes 103 to form multiple photovoltaic modules.
- Junction box 103 may provide electrical input terminals and mechanical support for bus-bars a, b and c (not shown), which may be used as an input to junction box 103 from panel 101 .
- Junction box 103 may be attachable and/or re-attachable to panel 101 or may be permanently attachable to panel 101 using for example a thermoset adhesive, e.g. an epoxy adhesive, screws, or other mechanical attachment.
- the electrical voltage outputs (V i ) at output terminals of junction boxes 103 may be connected in series to form a series photovoltaic serial string 107 through which a string current (I string ) may flow.
- Multiple strings 107 may be connected in parallel and across an input of a load 105 .
- V i and I string may be different for every photovoltaic module and string 107 , respectively.
- Load 105 may be a direct current (DC) load such as a DC motor, a battery, an input to a DC to DC converter, or a DC input to a DC to AC inverter.
- DC direct current
- FIG. 2 b shows a plan view photovoltaic panel 101 .
- the plan view shows casing 220 and photovoltaic cells 252 with tracks 250 showing through transparent glass 228 and sheet 224 b.
- FIG. 2 a shows a partial cross section 290 of section YY shown in FIG. 2 b for a photovoltaic panel 101 .
- the partial cross section is located near a side 220 a of casing 220 .
- Side 220 a is located at the perimeter of casing 220 as illustrated in FIG. 2 b .
- Casing 220 includes a back 220 b and four sides 220 a .
- Casing 220 may be fabricated using a metal alloy, aluminum, stainless steel, plastic or other material having sufficient strength to house the panel components. Casing 220 may hold together a sandwich of various sheets.
- Nearest to back 220 b is an insulating sheet 222 .
- a reactive encapsulant sheet 224 a may be made from a polymer, e.g., ethylene vinyl acetate (EVA) polymer, polyvinyl-butyral (PVB), etc.
- EVA ethylene vinyl acetate
- PVB polyvinyl-butyral
- a photovoltaic substrate 226 followed by another reactive encapsulant sheet 224 b , that may be transparent.
- Encapsulant sheet 224 b may be made out of the same or similar material as 224 a .
- a sheet of low iron flat glass 228 is a sheet of low iron flat glass 228 .
- junction box 103 may be mounted on back 220 b and bus-bars a, b and c (not shown) may terminate inside junction box 103 and connect to tracks 250 . In other embodiments, junction box 103 is mounted separate from panel 101 .
- photovoltaic panel 101 includes two sub-strings 11 of serially connected photovoltaic cells which output to bus-bars a, b and c which are the input terminals to junction box 103 .
- Sub-strings 11 may include one or more cells.
- the input of junction box 103 may include two bypass diodes 120 a and 120 b with anodes connected respectively to bus-bars c and b and cathodes connected respectively to bus-bars a and b.
- DC direct current
- the current into converter 322 is substantially that of current I PV flowing from strings 11 and the voltage V P input to converter 322 is the voltage across bus-bars a and c.
- the output of converter 322 is V i and the output of a converter 322 may be placed in series with other panels 101 and/or junction boxes 103 to form a string 107 as shown in FIG. 1 .
- FIGS. 3 b and 3 c show implementations of converter 322 shown in FIG. 3 a , according to various embodiments. Both FIGS. 3 b and 3 c are isolating DC to DC converters shown by converter circuits 322 a and 322 b respectively.
- Converters 322 a and 322 b have primary inputs (V P ) which may be connected across a panel 101 as shown in FIG. 3 a and secondary outputs (V i ) which may be connected in series to form a serial string 107 as shown in FIG. 1 .
- Converter 322 a has a single switch S 1 wired in series with a primary side of a mutual inductor L.
- the secondary side of inductor L is wired in series with a diode D.
- the anode of diode D may be connected to one end of inductor L and the cathode of diode D may be connected to the positive voltage terminal of secondary output Vi.
- the other end of inductor L not connected to diode D may be connected to the negative terminal of secondary output Vi.
- a resistor R and capacitor C may be wired in parallel across the secondary output V i .
- the cathode of diode D may be connected to one end of inductor L, the anode of diode D may be connected to the negative terminal of secondary output Vi, and the other end of inductor L not connected to diode D may be connected the positive terminal of secondary output Vi.
- a resistor R and capacitor C may be wired in parallel across secondary output V i in the alternate version.
- Converter 322 a may be an isolating buck-boost converter with the inductor (L) split to form a transformer, so that voltage ratios of V 1 and V 2 are multiplied as well as having galvanic isolation between primary input V P and secondary output V i .
- Converter 322 b may have a single switch S 1 wired in series with a primary side of a transformer Tr. Again transformer Tr provides galvanic isolation between primary input V P and secondary output V i .
- One end of the secondary winding of transformer Tr may connect to the anode of a diode D 1 and the cathode of D 1 may connect to one end of an inductor L.
- the other end of inductor L may be connected to the positive voltage terminal of secondary output V i .
- the other end of the secondary winding may be connected to the negative voltage terminal of secondary output V i .
- the other end of the secondary winding may connect to the anode of diode D 2 and the cathode of D 2 may connect to the cathode of diode D 1 .
- a capacitor C may be connected across secondary output V i .
- Other variation of converter 322 b may be used with D 1 , D 2 , L and C used in various other arrangements to provide the same output Vi Converter 322 b may be a forward converter and performs the same function of converter 322 a and may be more energy efficient than converter 322 a .
- Numerous other isolated DC to DC converter topologies may be used with respect to converter 322 , for example, ringing choke converter, resonant forward, half-bridge and full-bridge converters.
- a feature of DC to DC converters may be an adjustable duty cycle for conversion of DC power.
- Converters 322 a and 322 b therefore, may be adjusted to give an adjustable desired open circuit voltage across secondary output V i prior to connection in a string 107 .
- FIG. 3 d shows an isolating DC to alternating current (AC) isolating inverter 322 c , according to an illustrative feature.
- a switch S 1 may be wired in series with the primary side of a transformer T.
- switch S 1 may be a metal oxide semi-conductor field effect transistor (MOSFET).
- a DC voltage (V P ) may be applied across the source of switch S 1 and one side of primary coil T. The other side of primary coil T may be connected to the drain of switch S 1 .
- the source and drain of S 1 may reversed.
- a diode D may be connected in series with the secondary coil with of transformer T with the cathode of D connected to one end of the coil.
- capacitor C 1 Connected across the series connection of the secondary coil of transformer T and diode D may be capacitor C 1 .
- One end of capacitor C 1 may be connected to the anode of diode D and the other end of capacitor C 1 may be connected to the end of the secondary coil not connected to the diode D.
- the end of the secondary coil not connected to diode D may also be connected to one end of an inductor L and the other end of inductor L connected to anodes of switch control rectifiers SAC 1 , SAC 2 and one end of capacitor C 2 .
- the other end of capacitor C 2 may connect to the anode of diode D and the cathodes of switch control rectifiers SAC 3 and SAC 4 .
- the cathode of switch control rectifier SAC 1 may connect to the anode of switch control rectifier SAC 3 to form a first terminal of secondary AC output V Grid .
- the cathode of switch control rectifier SAC 2 may connect to the anode of switch control rectifier SAC 4 to form a second terminal of secondary AC output V Grid .
- Multiple secondary AC outputs (V Grid ) from multiple inverters 322 c may be connected in either series to give a series AC string or in parallel to give a parallel AC string.
- Converter circuits 322 a , 322 b and 322 c may having one terminal of respective primary sides (V P ) connected to a ground and/or casings 220 of panels 101 which may also be connected to the ground.
- the ground may be electrical earth and/or a local earth provided in the immediate vicinity of panels 101 . Further connections to electrical earth may be made by bonding to casings 220 of panels 101 and framework used to mount panels 101 .
- Photovoltaic module 30 includes one or more panels 101 series connected with sub-strings 11 which are in series and connected across the primary input (V P ) of an isolating converter 322 .
- Converter 322 provides a secondary output (V S ) which may be galvanically isolated from the primary input (V P ).
- the secondary output (V S ) may be DC and/or AC.
- Circuitry of converter 322 may be integrated or integrable with a photovoltaic panel 101 and/or housed in a junction box 103 .
- FIG. 5 shows a method 501 which may be applied to system 10 / 10 a and junction boxes 103 , according to an illustrative feature as shown in FIGS. 1 and 4 .
- a single primary DC input (V P ) of converter 322 is connected to bus-bars a and c via terminations, which may be located in in junction box 103 .
- V P DC input
- connection may be made to bus bar b.
- bus bar b may be additionally connected to a local ground or electrical earth. Similar connections may be made in multiple converters 322 (which may be in respective multiple junction boxes 103 ) integrated with panels 101 .
- step 505 the outputs (V i ) of converters 322 may be wired in series to form a string 107 illustrated in FIG. 4 .
- DC power on the primary input (V P ) may be converted with galvanic isolation to the secondary output (V i ).
- the galvanic isolation between primary input (V P ) and secondary output (V i ) may additionally allow for different ground potentials on either side of the primary input (V P ) and the secondary output (V i ).
- the galvanic isolation of different ground potentials, on either side of 322 may allow for use of various configurations of single or dual DC input and/or outputs on the primary inputs (V P ) and the secondary outputs (V i ) within string 107 , since each V P may be isolated from every other V P .
- a comparison may be made between ten panels 101 having converters 322 in a string 107 and ten panels without converters 322 connected in a serial string.
- the first panel 101 has the negative terminal connected to a ground and the chassis of the first panel 101 connected to the ground as well.
- the primary side of the respective converters 322 have a ground connection as shown in FIG.
- each respective panel 101 being connected to the ground as well.
- the primary side and hence the output of each panel 101 is at 40 Volts by virtue of the galvanic isolation between the primary side and the secondary side of each respective converter 322 .
- Panels 101 in the serial string may have to have a voltage rating of at least 400 Volts if the first panel 101 has the negative terminals connected to the ground and possibly a much greater rating of 400 Volts if the first panel 101 has the negative terminal not connected to the ground.
- the negative terminal not connected to the ground may allow the voltage of the serial string to float, so that the tenth panel 101 in the serial string may have a voltage greater than 400 Volts.
- the series string of secondary outputs of converters 322 may be referenced to ground at various points to provide a reduced maximum voltage with respect to the ground reference of the primary side.
- a secondary output of an intermediate converter in each string may be grounded, such that converters connected in the string on one side (e.g., the positive side) of the ground point may have a positive voltage with respect to ground, and converters connected in the string on the other side (e.g., the negative side) of the ground point have a negative voltage.
- the 400V across the secondary output string can be referenced to a range of ⁇ 200V to +200V with respect to the ground reference.
- the maximum primary to secondary side voltage difference can be reduced from 400V to 200V.
- FIG. 6 shows a method 601 which may be applied to system 10 / 10 a and a junction box 103 , according to an illustrative feature.
- Method 601 may be applied to junction box and/or panel 101 , prior to making a series connection of the outputs (V i ) of converters 322 to form a string 107 .
- a single primary DC input (V P ) of converter 322 is connected to bus-bars a and c via terminations, which may be located in junction box 103 . Where converter 103 has a dual DC input, connection may be made to bus bar b.
- a panel 101 may be then irradiated to provide a voltage on the primary input (V P ) of converter 322 .
- another DC voltage source may be connected to the primary input (V P ) of converter 322 .
- DC power on the primary input (V P ) may be converted with galvanic isolation to the secondary output (V i ).
- the duty cycle of converter 322 may be adjusted to vary and set the open circuit voltage on the secondary output (V i ) of converter 322 (step 609 ).
- the duty cycle of converter may be adjusted to vary and set the operating voltage on the secondary output (V i ) of converter 322 when the secondary output (V i ) is connected to a load and/or within a string 107 .
Abstract
Description
Claims (20)
Priority Applications (3)
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US16/113,593 US11177768B2 (en) | 2012-06-04 | 2018-08-27 | Integrated photovoltaic panel circuitry |
US17/496,883 US11606061B2 (en) | 2012-06-04 | 2021-10-08 | Integrated photovoltaic panel circuitry |
US18/163,628 US20230179142A1 (en) | 2012-06-04 | 2023-02-02 | Integrated Photovoltaic Panel Circuitry |
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US13/487,311 US10115841B2 (en) | 2012-06-04 | 2012-06-04 | Integrated photovoltaic panel circuitry |
US16/113,593 US11177768B2 (en) | 2012-06-04 | 2018-08-27 | Integrated photovoltaic panel circuitry |
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US13/487,311 Division US10115841B2 (en) | 2012-06-04 | 2012-06-04 | Integrated photovoltaic panel circuitry |
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US17/496,883 Continuation US11606061B2 (en) | 2012-06-04 | 2021-10-08 | Integrated photovoltaic panel circuitry |
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US20180374966A1 US20180374966A1 (en) | 2018-12-27 |
US11177768B2 true US11177768B2 (en) | 2021-11-16 |
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US16/113,593 Active 2032-10-16 US11177768B2 (en) | 2012-06-04 | 2018-08-27 | Integrated photovoltaic panel circuitry |
US17/496,883 Active US11606061B2 (en) | 2012-06-04 | 2021-10-08 | Integrated photovoltaic panel circuitry |
US18/163,628 Pending US20230179142A1 (en) | 2012-06-04 | 2023-02-02 | Integrated Photovoltaic Panel Circuitry |
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US18/163,628 Pending US20230179142A1 (en) | 2012-06-04 | 2023-02-02 | Integrated Photovoltaic Panel Circuitry |
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US (4) | US10115841B2 (en) |
EP (2) | EP2856514B1 (en) |
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US10115841B2 (en) | 2018-10-30 |
US11606061B2 (en) | 2023-03-14 |
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US20220103121A1 (en) | 2022-03-31 |
US20180374966A1 (en) | 2018-12-27 |
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